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Generation of 3.3-mJ, 2.45-µm, sub-2-cycle laser pulses via hollow-core fiber pulse compression

  • Mathew A. Britton
  • , Huanyu Song
  • , Chelsea Kincaid
  • , Christian Brahms
  • , Eric Cunningham
  • , Andrew Daniels
  • , Li Fang
  • , Martin Gebhardt
  • , Brian Kaufman
  • , Christopher Lantigua
  • , Kirk A. Larsen
  • , Quynh Le
  • , Judith Lojo
  • , Marcel Neuhaus
  • , Joseph S. Robinson
  • , Blanca Teodoro
  • , John C. Travers
  • , Jonathan Tsao
  • , Zenghu Chang
  • , Michael Chini
  • Yi Wu, Ruaridh Forbes

Research output: Contribution to journalArticlepeer-review

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Abstract

We demonstrate nonlinear compression of mid-infrared pulses from a Cr:ZnSe chirped-pulse amplifier using a gas-filled stretched hollow-core fiber followed by bulk-material compression. Starting from 90 fs, 2.45 µm pulses with 5.3 mJ energy, spectral broadening in the gas-filled capillary combined with optimized dispersion management enables compression to 15 fs, less than two optical cycles at 2.45 µm, with 3.3 mJ pulse energy, corresponding to a peak power of approximately 0.12 TW. The simplicity of the approach, based on a single hollow-core fiber stage and bulk dispersion compensation, makes it scalable to higher energies and establishes a robust route to mid-infrared drivers for high harmonic generation and attosecond applications.
Original languageEnglish
Pages (from-to)3441-3444
Number of pages4
JournalOptics Letters
Volume51
Issue number12
Early online date12 Jun 2026
DOIs
Publication statusPublished - 15 Jun 2026

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